Emergence of DNA polymerase ε antimutators that escape error-induced extinction in yeast

Lindsey N Williams1, Alan J Herr, Bradley D Preston

  • 1Department of Pathology, University of Washington, Seattle, WA 98195, USA.

Genetics
|January 12, 2013
PubMed

Insights

Defects in DNA polymerase ε proofreading combined with a faulty mismatch repair system cause synthetic lethality in yeast. This suggests that unrepaired DNA replication errors can lead to cell death, with some mutations suppressing this effect.

Area of Science:

  • Molecular Biology
  • Genetics
  • Yeast Genetics

Background:

  • DNA polymerases ε and δ are crucial for DNA synthesis, possessing proofreading exonucleases to correct errors.
  • The mismatch repair (MMR) system corrects rare errors missed by proofreading.
  • Loss of proofreading or MMR increases mutation rates; combined loss of Pol δ proofreading and MMR is lethal.

Purpose of the Study:

  • To investigate the synthetic lethal relationship between defects in DNA polymerase ε proofreading and the MMR system.
  • To understand the mechanisms underlying replication error-induced extinction (EEX) and identify suppressor mutations.

Main Methods:

  • Utilized a plasmid-shuffling strategy in haploid Saccharomyces cerevisiae.
  • Assessed synthetic lethality by combining pol2-4 (Pol ε proofreading defect) with various MMR-deficient alleles.
  • Analyzed extragenic and intragenic suppressor mutations in error-induced extinction mutants.

Main Results:

  • Observed synthetic lethality between pol2-4 and complete MMR abrogation, but not partial MMR loss.
  • High levels of unrepaired Pol ε errors drive extinction, but escape variants (eex mutants) frequently emerged.
  • Identified intragenic Pol ε mutations and extragenic suppressors that reduced the mutator phenotype, indicating diverse suppression mechanisms.

Conclusions:

  • Unrepaired leading- and lagging-strand polymerase errors drive extinction within a few cell divisions.
  • Polymerase-specific pathways exist for mutator suppression.
  • Factors beyond proofreading and MMR influence leading-strand DNA replication fidelity, as suggested by extragenic suppressors.

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